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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Interplant heat exchanger network synthesis using nanofluids for interplant heat exchange
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Interplant heat exchanger network synthesis using nanofluids for interplant heat exchange

机译:用于纳米流体进行植入间换热的植入式热交换器网络合成

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Heat transfer between different processes or inter-plant heat integration can be seen as an efficient way to cost-efficiently improve the energy efficiency of a system of different processes. Nanofluids are a new type of heat transfer fluids, in which particles with size of 1-100 nm are suspended in a liquid. Nanosized particles can cause considerable enhancement in convective heat transfer performance of the base fluid, although at the same time they increase the viscosity of the fluid, thus enhancing the needed pumping power. In this work we study the effect of using nanofluids in streams transferring heat from different processes by optimizing the total annual cost of a heat exchanger network. These costs include the cost of hot and cold utilities, heat exchanger investment costs and pumping costs. A modified version of the well-known Synheat superstructure is used as the optimization model in comparing the different fluids (water and five nanofluids) in two examples. Some key parameters (electricity price and annuity factor) are varied in these two examples. The results show that nanofluids can in some cases save total annual costs and especially if electricity prices are low compared to other factors. This is true especially for MgO 1.0% which outperformed water and the other nanofluids in normal price conditions. But altogether it is evident that most, and in some cases all, of the benefits provided by nanofluids to improved heat transfer is canceled out by the increased pressure drops.
机译:不同工艺或植物间热集成之间的传热可以被视为成本有效地提高不同过程系统的能效的有效方法。纳米流体是一种新型的传热流体,其中尺寸为1-100nm的颗粒悬浮在液体中。纳米粒子颗粒可引起基本流体的对流传热性能的相当大的增强,尽管同时增加流体的粘度,从而增强了所需的泵送功率。在这项工作中,我们通过优化热交换器网络的总年成本,研究使用纳米流体在流中传递热量的热量。这些成本包括冷热和寒冷公用事业的成本,换热器投资成本和抽水成本。众所周知的略微傻瓜上层结构的改进版本用作比较两个实例中的不同流体(水和五个纳米流体)的优化模型。在这两个示例中,一些关键参数(电价和年金因子)在这两个例子中变化。结果表明,纳米流体可以在某些情况下可以节省总年度成本,特别是如果与其他因素相比,如果电价低。这对于MgO 1.0%来说,这是真实的,其在正常价格条件下优于水和其他纳米流体。但总是显而易见的是,大多数情况下,在某些情况下,所有的纳米流体都提供改善传热的益处被增加的压降取消。

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